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High-precision measurement of the space-like η\eta^\prime transition form factor

Using a 20.3 fb120.3\ \text{fb}^{-1} data sample collected by the BESIII detector, this study presents a high-precision measurement of the space-like η\eta^\prime transition form factor over the Q2Q^2 range of $0.1$ to 6.0 GeV26.0\ \text{GeV}^2, achieving uncertainties better than 3.0%3.0\% for Q2<1.5 GeV2Q^2 < 1.5\ \text{GeV}^2 and providing the first direct determination below 0.3 GeV20.3\ \text{GeV}^2.

Original authors: BESIII Collaboration, M. Ablikim, M. N. Achasov, P. Adlarson, X. C. Ai, C. S. Akondi, R. Aliberti, A. Amoroso, Q. An, Y. H. An, M. S. Anderson, Y. Bai, O. Bakina, H. R. Bao, X. L. Bao, M. Barbagiovann
Published 2026-08-14
📖 4 min read🧠 Deep dive

Original authors: BESIII Collaboration, M. Ablikim, M. N. Achasov, P. Adlarson, X. C. Ai, C. S. Akondi, R. Aliberti, A. Amoroso, Q. An, Y. H. An, M. S. Anderson, Y. Bai, O. Bakina, H. R. Bao, X. L. Bao, M. Barbagiovanni, V. Batozskaya, K. Begzsuren, N. Berger, M. Berlowski, M. B. Bertani, D. Bettoni, F. Bianchi, E. Bianco, A. Bortone, I. Boyko, R. A. Briere, A. Brueggemann, D. Cabiati, H. Cai, M. H. Cai, X. Cai, A. Calcaterra, G. F. Cao, N. Cao, S. A. Cetin, X. Y. Chai, J. F. Chang, T. T. Chang, G. R. Che, Y. Z. Che, C. H. Chen, Chao Chen, G. Chen, H. S. Chen, H. Y. Chen, M. L. Chen, S. J. Chen, S. M. Chen, T. Chen, W. Chen, X. R. Chen, X. T. Chen, X. Y. Chen, Y. B. Chen, Y. Q. Chen, Z. K. Chen, J. Cheng, L. N. Cheng, S. K. Choi, X. Chu, G. Cibinetto, F. Cossio, J. Cottee-Meldrum, H. L. Dai, J. P. Dai, X. C. Dai, A. Dbeyssi, R. E. de Boer, D. Dedovich, Z. Y. Deng, A. Denig, I. Denisenko, M. Destefanis, F. De Mori, E. Di Fiore, X. X. Ding, Y. Ding, Y. X. Ding, J. Dong, L. Y. Dong, M. 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Original paper licensed under CC BY 4.0 (http://creativecommons.org/licenses/by/4.0/). This is an AI-generated explanation of the paper below. It is not written or endorsed by the authors. For technical accuracy, refer to the original paper. Read full disclaimer

Imagine the universe as a giant, invisible Lego set. For decades, physicists have been trying to figure out how the tiny, colorful bricks that make up everything—protons, neutrons, and the particles inside them—snap together. The force that holds these bricks together is called the "strong force," and the rulebook for how it works is a theory called Quantum Chromodynamics, or QCD. But here's the tricky part: at the low energies where most of our everyday matter lives, the rules get messy and hard to calculate. It's like trying to predict the path of a single drop of water in a raging waterfall; the math gets too complicated for even the smartest supercomputers to solve perfectly.

To understand these messy rules, scientists look at specific particles called mesons, which are like temporary partnerships between two smaller particles. One of the most interesting messengers in this world is the eta-prime (η\eta') meson. Think of it as a special messenger that can talk to light (photons) in a very specific way. By watching how the eta-prime interacts with light, scientists can peek behind the curtain of the strong force and see if their theories match reality. This is especially important because these interactions help explain a tiny, mysterious wobble in how a particle called a muon spins. If our theories about the eta-prime are wrong, our whole understanding of why the universe behaves the way it does might need a serious tune-up.

Now, enter the latest chapter in this story. A massive team of scientists, working together as the BESIII Collaboration, decided to take a super-precise snapshot of the eta-prime meson. They used a giant particle collider in China, which acts like a high-speed racetrack for electrons and positrons. By smashing these particles together at a specific energy level, they created a shower of new particles, including the eta-prime. But they didn't just want to see the particle; they wanted to measure exactly how it "shakes hands" with light at different distances.

In the world of particle physics, "distance" is measured by something called momentum transfer, denoted as Q2Q^2. You can think of Q2Q^2 as a zoom level. A low Q2Q^2 is like looking at the meson from far away, seeing the big picture, while a high Q2Q^2 is like zooming in with a microscope to see the tiny, internal details. The team collected a huge amount of data—equivalent to 20.3 inverse femtobarns of collisions—to study the eta-prime's "transition form factor." This is just a fancy way of saying they measured how strong the connection is between the eta-prime and a virtual photon (a flash of light that exists only for a split second) across a wide range of zoom levels, specifically from $0.1$ to $6.0$ GeV2^2.

What makes this paper special is that it finally fills in the blanks in the "low zoom" area. Previous experiments had good data for the high-zoom, high-energy parts, but the low-energy region (below $1.5$ GeV2^2) was a bit of a foggy mystery. The BESIII team managed to measure this foggy region with incredible clarity, achieving a precision better than 3.0% for the lower energy range. They even provided the very first direct measurement for the region below $0.3$ GeV2^2, a place where no one had looked directly before.

The scientists found that the eta-prime's behavior in this low-energy zone matches up well with some of the most advanced theoretical models, including those based on "lattice QCD" (a method that uses a grid to simulate the strong force) and "data-driven" approaches. However, they also noted that there is still a bit of tension between different ways of calculating the universe's rules. By pinning down the eta-prime's behavior so precisely, this paper gives scientists a much sharper tool to test their theories. It doesn't solve the mystery of the strong force overnight, but it provides a crucial, high-definition piece of the puzzle that helps everyone see the picture a little more clearly. The team is confident in their numbers, having carefully checked their work against background noise and simulation errors, ensuring that this new map of the eta-prime is as accurate as possible.

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